A control volume procedure for solving the elastic stress-strain equations on an unstructured mesh

A robust and accurate control volume procedure for solving the elastic stress-strain equations for two-dimensional arbitrarily complex geometries is described. The method is implemented for triangular and/or quadrilateral irregular meshes as well as rectangular regular meshes and is thus a control v...

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Published inApplied mathematical modelling Vol. 15; no. 11; pp. 639 - 645
Main Authors Fryer, Y.D., Bailey, C., Cross, M., Lai, C.-H.
Format Journal Article
LanguageEnglish
Published New York, NY Elsevier Inc 01.11.1991
Elsevier Science
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ISSN0307-904X
DOI10.1016/S0307-904X(09)81010-X

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Abstract A robust and accurate control volume procedure for solving the elastic stress-strain equations for two-dimensional arbitrarily complex geometries is described. The method is implemented for triangular and/or quadrilateral irregular meshes as well as rectangular regular meshes and is thus a control volume-unstructured mesh (CV-UM) procedure. The procedure is compared favorably to conventional finite element (FE) approaches with regard to accuracy on a number of standard test problems that demonstrate the ability of the CV-UM procedure to model constraints on the boundary and within the domain, boundary loads, body forces throughout the domain induced by a temperature distribution, multimaterial problems, and irregular geometries. For static problems the CV-UM algorithm requires about twice as much CPU time as the conventional FE analysis to achieve convergence on the same mesh. However, it is expected that as the solution procedure is optimized, this overhead will reduce by a further factor of 2.
AbstractList A robust and accurate control volume procedure for solving the elastic stress-strain equations for two-dimensional arbitrarily complex geometries is described. The method is implemented for triangular and/or quadrilateral irregular meshes as well as rectangular regular meshes and is thus a control volume-unstructured mesh (CV-UM) procedure. The procedure is compared favorably to conventional finite element (FE) approaches with regard to accuracy on a number of standard test problems that demonstrate the ability of the CV-UM procedure to model constraints on the boundary and within the domain, boundary loads, body forces throughout the domain induced by a temperature distribution, multimaterial problems, and irregular geometries. For static problems the CV-UM algorithm requires about twice as much CPU time as the conventional FE analysis to achieve convergence on the same mesh. However, it is expected that as the solution procedure is optimized, this overhead will reduce by a further factor of 2.
Author Fryer, Y.D.
Lai, C.-H.
Cross, M.
Bailey, C.
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Cites_doi 10.1016/0041-5553(65)90066-2
10.1016/0045-7949(89)90436-7
10.1016/0041-5553(64)90153-3
10.1016/0020-7683(70)90012-0
10.1016/0016-0032(67)90585-6
10.1002/nme.1620300107
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Issue 11
Keywords control volume
unstructured mesh
elastic stress analysis
Stress analysis
Two dimensional model
Computer program
Flow(fluid)
Language English
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Snippet A robust and accurate control volume procedure for solving the elastic stress-strain equations for two-dimensional arbitrarily complex geometries is described....
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crossref
elsevier
SourceType Index Database
Enrichment Source
Publisher
StartPage 639
SubjectTerms control volume
elastic stress analysis
Exact sciences and technology
Fundamental areas of phenomenology (including applications)
Physics
Solid mechanics
Static elasticity (thermoelasticity...)
Structural and continuum mechanics
unstructured mesh
Title A control volume procedure for solving the elastic stress-strain equations on an unstructured mesh
URI https://dx.doi.org/10.1016/S0307-904X(09)81010-X
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